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Design and Numerical Simulation of Biasing System for Electromagnetic-Acoustic Transducer of Bulk Longitudinal Waves

机译:纵波电磁声换能器偏置系统的设计与数值模拟

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A finite element model has been developed that allows one to study the distribution of the magnetic field generated by the biasing system of an electromagnetic-acoustic transducer of bulk longitudinal waves. Geometrical and electrical parameters of the biasing system for rolled sheet with a thickness of 20 mm were optimized. The selected parameters make it possible to provide the tangential component of the magnetic field strength of 35 kA/m, which is necessary for the magnetostrictive mechanism of electromagnetic-acoustic transformation. The dependences of the tangential component of the magnetic field strength on the surface of the investigated testing object and field distribution in various cross-sections of the biasing system are obtained. Based on the simulation results, a prototype biasing system was developed that implements the design of an electromagnetic-acoustic transducer of longitudinal waves and provides the required magnetic fields on the surface of the testing object. The experimental data, distribution of the magnetic flux density in the gap of the magnetic circuit and its current dependences in the coil of the biasing system, are in satisfactory agreement with the results of numerical simulation.
机译:已经开发了一种有限元模型,该模型允许研究由纵向纵波的电磁声换能器的偏置系统产生的磁场的分布。优化了厚度为20 mm的轧制薄板偏置系统的几何和电气参数。所选择的参数使得可以提供35 kA / m的磁场强度的切向分量,这是电磁声变换的磁致伸缩机制所必需的。得到了磁场强度的切向分量与被测物体表面上的依存关系以及偏置系统各个横截面中的磁场分布的依赖关系。根据仿真结果,开发了一种原型偏置系统,该系统可以实现纵波电磁声换能器的设计,并在测试对象的表面上提供所需的磁场。实验数据,磁路间隙中的磁通密度分布及其在偏置系统线圈中的电流依赖性与数值模拟结果令人满意。

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